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An automatic region detection and processing approach in genetic programming for binary image classification

机译:遗传规划中二进制图像分类的自动区域检测与处理方法

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In image classification, region detection is an effective approach to reducing the dimensionality of the image data but requires human intervention. Genetic Programming (GP) as an evolutionary computation technique can automatically identify important regions, and conduct feature extraction, feature construction and classification simultaneously. In this paper, an automatic region detection and processing approach in GP (GP-RDP) method is proposed for image classification. This approach is able to evolve important image operators to deal with detected regions for facilitating feature extraction and construction. To evaluate the performance of the proposed method, five recent GP methods and seven non-GP methods based on three types of image features are used for comparison on four image data sets. The results reveal that the proposed method can achieve comparable performance on easy data sets and significantly better performance on difficult data sets than the other comparable methods. To further demonstrate the interpretability and understandability of the proposed method, two evolved programs are analysed. The analysis shows the good interpretability of the GP-RDP method and proves that the GP-RDP method is able to identify prominent regions, evolve effective image operators to process these regions, extract and construct good features for efficient image classification.
机译:在图像分类中,区域检测是一种有效的方法来减少图像数据的维度,但需要人为干预。作为进化计算技术的遗传编程(GP)可以自动识别重要地区,并同时进行特征提取,特征施工和分类。本文提出了用于图像分类的GP(GP-RDP)方法中的自动区域检测和处理方法。这种方法能够发展重要的图像运营商来处理检测到的区域,以便促进特征提取和构造。为了评估所提出的方法的性能,最近的五种GP方法和基于三种图像特征的七种非GP方法用于四个图像数据集进行比较。结果表明,所提出的方法可以在易数据集上实现可比性的性能,并且在困难的数据集中的性能明显更好地比其他类似方法更好。为了进一步证明所提出的方法的可解释性和可理解性,分析了两种进化的程序。该分析显示了GP-RDP方法的良好解释性,并证明了GP-RDP方法能够识别突出区域,从而发展有效的图像运营商来处理这些区域,提取和构建良好的特征以获得有效的图像分类。

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